Modern Time Series Forecasting with Python, 2nd Edition by Manu Joseph - ISBN: 9781835883181
Paperback
Master time series: ML, deep learning, and cutting-edge forecasting.
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Modern Time Series Forecasting with Python, 2nd Edition

Industry-ready machine learning and deep learning time series analysis with PyTorch and pandas

RRP$87.98

$82.72

  • Paperback

    660 pages

  • Release Date

    31 October 2024

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Summary

Predicting the future, whether it’s market trends, energy demand, or website traffic, has never been more crucial. This practical, hands-on guide empowers you to build and deploy powerful time series forecasting models. Whether you’re working with traditional statistical methods or cutting-edge deep learning architectures, this book provides structured learning and best practices for both.

Starting with the basics, this data science book introduces fundamental time series concepts, su…

Book Details

ISBN-13:9781835883181
ISBN-10:1835883184
Author:Manu Joseph, Jeffrey Tackes, Christoph Bergmeir
Publisher:Packt Publishing Limited
Imprint:Packt Publishing Limited
Format:Paperback
Number of Pages:660
Edition:2nd
Release Date:31 October 2024
Dimensions:191mm x 235mm
A-Format
B-Format
C-Format
Modern Time Series Forecasting with Python, 2nd Edition by Manu Joseph - ISBN: 9781835883181
191 × 235 mm
A4
mm / in
About The Author

Manu Joseph

Manu Joseph is a self-made data scientist with more than a decade of experience working with many Fortune 500 companies enabling digital and AI transformations, specifically in machine learning-based demand forecasting. He is considered an expert, thought leader, and strong voice in the world of time series forecasting. Currently, Manu leads applied research at Thoucentric, where he advances research by bringing cutting-edge AI technologies to the industry. He is also an active open-source contributor and developed an open-source library—PyTorch Tabular—which makes deep learning for tabular data easy and accessible. Originally from Thiruvananthapuram, India, Manu currently resides in Bengaluru, India, with his wife and son.

Jeff Tackes is a seasoned data scientist specializing in demand forecasting with over a decade of industry experience. Currently he is at Kraft Heinz, where he leads the research team in charge of demand forecasting. He has pioneered the development of best-in-class forecasting systems utilized by leading Fortune 500 companies. Jeff’s approach combines a robust data-driven methodology with innovative strategies, enhancing forecasting models and business outcomes significantly. Leading cross-functional teams, Jeff has designed and implemented demand forecasting systems that have markedly improved forecast accuracy, inventory optimization, and customer satisfaction. His proficiency in statistical modeling, machine learning, and advanced analytics has led to the implementation of forecasting methodologies that consistently surpass industry norms. Jeff’s strategic foresight and his capability to align forecasting initiatives with overarching business objectives have established him as a trusted advisor to senior executives and a prominent expert in the data science domain. Additionally, Jeff actively contributes to the open-source community, notably to PyTimeTK, where he develops tools that enhance time series analysis capabilities. He currently resides in Chicago, IL with his wife and son.

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